Cardioprotective effects of ingliforib, a novel glycogen phosphorylase inhibitor

W Ross Tracey1, Judith L Treadway, William P Magee

  • 1Pfizer Global Research and Development, MS8220-3125, Eastern Point Rd., Groton, CT 06340, USA. w_ross_tracey@groton.pfizer.com

Insights

Inhibiting glycogen phosphorylase with ingliforib significantly reduces heart damage from ischemia-reperfusion injury in rabbit models. This novel approach shows promise for cardioprotection, especially in diabetic patients.

Area of Science:

  • Biochemistry
  • Cardiology
  • Pharmacology

Background:

  • Myocardial ischemic injury is exacerbated by anaerobic glycolysis and proton production.
  • Inhibition of glycogenolysis, the breakdown of glycogen, is a potential strategy for cardioprotection.
  • Glycogen phosphorylase is a key enzyme in glycogenolysis.

Purpose of the Study:

  • To investigate the cardioprotective effects of ingliforib, a novel glycogen phosphorylase inhibitor.
  • To evaluate the efficacy of ingliforib in reducing infarct size in vitro and in vivo models of ischemia-reperfusion injury.

Main Methods:

  • Langendorff-perfused rabbit hearts subjected to regional ischemia and reperfusion.
  • Open-chest anesthetized rabbits undergoing regional ischemia and reperfusion.
  • Administration of ingliforib before ischemia and assessment of infarct size, cardiac function, and biochemical markers.
  • Measurement of myocardial glycogen phosphorylase activity and glycogen stores.

Main Results:

  • Ingliforib demonstrated a concentration-dependent reduction in infarct size in isolated hearts (up to 69% at 10 microM).
  • In vivo, ingliforib (15 mg/kg loading dose; 23 mg.kg(-1).h(-1) infusion) reduced infarct size by 52% and decreased plasma glucose and lactate.
  • Ingliforib preserved myocardial glycogen stores and reduced glycogen phosphorylase activity (65% for phosphorylase a, 40% for total activity) without significant adverse effects on hemodynamics.

Conclusions:

  • Glycogen phosphorylase inhibition with ingliforib markedly reduces myocardial ischemic injury in both in vitro and in vivo settings.
  • Ingliforib represents a potential therapeutic strategy for clinical cardioprotection.
  • This approach may be particularly beneficial for diabetic patients at elevated cardiovascular risk.

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